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Examination of Mitotic and Meiotic Fission Yeast Nuclear Dynamics by Fluorescence Live-cell Microscopy
Published on: June 24, 2019
Evolutionary conservation of the structure and function of meiotic Rec114-Mei4 and Mer2 complexes
Dima Daccache1, Emma De Jonge1, Pascaline Liloku1
1Louvain Institute of Biomolecular Science and Technology, Université Catholique de Louvain, 1348 Louvain-La-Neuve, Belgium.
Abstract:
Meiosis-specific Rec114-Mei4 and Mer2 complexes are thought to enable Spo11-mediated DNA double-strand break (DSB) formation through a mechanism that involves DNA-dependent condensation. However, the structure, molecular properties, and evolutionary conservation of Rec114-Mei4 and Mer2 are unclear. Here, we present AlphaFold models of Rec114-Mei4 and Mer2 complexes supported by nuclear magnetic resonance (NMR) spectroscopy, small-angle X-ray scattering (SAXS), and mutagenesis. We show that dimers composed of the Rec114 C terminus form α-helical chains that cup an N-terminal Mei4 α helix, and that Mer2 forms a parallel homotetrameric coiled coil. Both Rec114-Mei4 and Mer2 bind preferentially to branched DNA substrates, indicative of multivalent protein-DNA interactions. Indeed, the Rec114-Mei4 interaction domain contains two DNA-binding sites that point in opposite directions and drive condensation. The Mer2 coiled-coil domain bridges coaligned DNA duplexes, likely through extensive electrostatic interactions along the length of the coiled coil. Finally, we show that the structures of Rec114-Mei4 and Mer2 are conserved across eukaryotes, while DNA-binding properties vary significantly. This work provides insights into the mechanism whereby Rec114-Mei4 and Mer2 complexes promote the assembly of the meiotic DSB machinery and suggests a model in which Mer2 condensation is the essential driver of assembly, with the DNA-binding activity of Rec114-Mei4 playing a supportive role.
Insights
Meiosis proteins Rec114-Mei4 and Mer2 form structures that bind DNA, promoting DNA double-strand break (DSB) formation. Mer2 condensation drives assembly, with Rec114-Mei4 DNA binding playing a supportive role.
Area of Science:
- Molecular biology
- Genetics
- Structural biology
Background:
- Meiosis-specific Rec114-Mei4 and Mer2 complexes are crucial for Spo11-mediated DNA double-strand break (DSB) formation.
- The precise structure, molecular properties, and evolutionary conservation of these complexes remain largely uncharacterized.
Purpose of the Study:
- To elucidate the structural and molecular mechanisms of Rec114-Mei4 and Mer2 complexes in meiotic DSB formation.
- To investigate the evolutionary conservation and DNA-binding properties of these key meiotic proteins.
Main Methods:
- Utilized AlphaFold modeling to predict complex structures.
- Employed nuclear magnetic resonance (NMR) spectroscopy, small-angle X-ray scattering (SAXS), and mutagenesis for experimental validation.
- Analyzed DNA-binding preferences and interactions.
Main Results:
- Determined the structure of Rec114-Mei4 as α-helical chains of Rec114 C termini cupping a Mei4 α helix.
- Revealed Mer2 forms a parallel homotetrameric coiled coil.
- Demonstrated both complexes bind preferentially to branched DNA substrates via multivalent interactions, with Rec114-Mei4 driving condensation and Mer2 bridging DNA duplexes.
Conclusions:
- Rec114-Mei4 and Mer2 structures are conserved across eukaryotes, but DNA-binding properties vary.
- Mer2-mediated condensation is the primary driver for meiotic DSB machinery assembly, supported by Rec114-Mei4's DNA-binding activity.
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